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Revisiting the Anomalous Bending Elasticity of Sharply Bent DNA

机译:重新审视急剧弯曲的DNA的异常弯曲弹性

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摘要

Several recent experiments suggest that sharply bent DNA has a surprisingly high bending flexibility, but the cause of this flexibility is poorly understood. Although excitation of flexible defects can explain these results, whether such excitation can occur with the level of DNA bending in these experiments remains unclear. Intriguingly, the DNA contained preexisting nicks in most of these experiments but whether nicks might play a role in flexibility has never been considered in the interpretation of experimental results. Here, using full-atom molecular dynamics simulations, we show that nicks promote DNA basepair disruption at the nicked sites, which drastically reduces DNA bending energy. In addition, lower temperatures suppress the nick-dependent basepair disruption. In the absence of nicks, basepair disruption can also occur but requires a higher level of DNA bending. Therefore, basepair disruption inside B-form DNA can be suppressed if the DNA contains preexisting nicks. Overall, our results suggest that the reported mechanical anomaly of sharply bent DNA is likely dependent on preexisting nicks, therefore the intrinsic mechanisms of sharply bent nick-free DNA remain an open question.
机译:最近的一些实验表明,急剧弯曲的DNA具有令人惊讶的高弯曲柔韧性,但是对这种柔韧性的原因了解甚少。尽管激发柔性缺陷可以解释这些结果,但是在这些实验中是否可以随着DNA弯曲水平的发生而激发。有趣的是,在大多数这些实验中,DNA都包含预先存在的缺口,但是在解释实验结果时从未考虑过缺口是否会在柔韧性中起作用。在这里,使用全原子分子动力学模拟,我们发现缺口促进了缺口部位的DNA碱基对破坏,从而大大降低了DNA弯曲能。另外,较低的温度抑制了尼克依赖性碱基对的破坏。在没有缺口的情况下,碱基对破坏也可能发生,但需要更高水平的DNA弯曲。因此,如果DNA包含预先存在的缺口,则可以抑制B型DNA内部的碱基对破坏。总的来说,我们的结果表明,所报道的急剧弯曲的DNA的机械异常可能取决于先前存在的缺口,因此,急剧弯曲的无缺口DNA的内在机制仍然是一个悬而未决的问题。

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